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Organic solar cells with large insensitivity to donor polymer molar mass across all acceptor classes

  • Donor polymer number-average molar mass (M-n) has long been known to influence organic photovoltaic (OPV) performance via changes in both the polymer properties and the resulting bulk heterojunction morphology. The exact nature of these M-n effects varies from system to system, although there is generally some intermediate M-n that results in optimal performance. Interestingly, our earlier work with the difluorobenzotriazole (FTAZ)-based donor polymer, paired with either N2200 (polymer acceptor) or PC61BM (fullerene acceptor), PcBm demonstrated <10% variation in power conversion efficiency and a consistent morphology over a large span of M-n (30 kg/mol to over 100 kg/mol). Would such insensitivity to polymer M-n still hold true when prevailing small molecular acceptors were used with FTAZ? To answer this question, we explored the impact of FTAZ on OPVs with ITIC, a high-performance small-molecule fused-ring electron acceptor (FREA). By probing the photovoltaic characteristics of the resulting OPVs, we show that a similar FTAZ mnDonor polymer number-average molar mass (M-n) has long been known to influence organic photovoltaic (OPV) performance via changes in both the polymer properties and the resulting bulk heterojunction morphology. The exact nature of these M-n effects varies from system to system, although there is generally some intermediate M-n that results in optimal performance. Interestingly, our earlier work with the difluorobenzotriazole (FTAZ)-based donor polymer, paired with either N2200 (polymer acceptor) or PC61BM (fullerene acceptor), PcBm demonstrated <10% variation in power conversion efficiency and a consistent morphology over a large span of M-n (30 kg/mol to over 100 kg/mol). Would such insensitivity to polymer M-n still hold true when prevailing small molecular acceptors were used with FTAZ? To answer this question, we explored the impact of FTAZ on OPVs with ITIC, a high-performance small-molecule fused-ring electron acceptor (FREA). By probing the photovoltaic characteristics of the resulting OPVs, we show that a similar FTAZ mn insensitivity is also found in the FTAZ:ITIC system. This study highlights a single-donor polymer which, when paired with an archetypal fullerene, polymer, and FREA, results in systems that are largely insensitive to donor M. Our results may have implications in polymer batch-to-batch reproducibility, in particular, relaxing the need for tight M-n control during synthesis.show moreshow less

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Author details:Stephanie Samson, Jeromy RechORCiD, Lorena Perdigon-ToroORCiDGND, Zhengxing Peng, Safa ShoaeeORCiDGND, Harald AdeORCiD, Dieter NeherORCiDGND, Martin StolterfohtORCiD, Wei YouORCiD
DOI:https://doi.org/10.1021/acsapm.0c01041
ISSN:2637-6105
Title of parent work (English):ACS applied polymer materials
Publisher:American Chemical Society
Place of publishing:Washington
Publication type:Article
Language:English
Date of first publication:2020/10/07
Publication year:2020
Release date:2024/01/19
Tag:conjugated polymers; fluorination; fullerenes; molecular weight; non-fullerene acceptors; polymer solar cells; power conversion efficiency
Volume:2
Issue:11
Number of pages:9
First page:5300
Last Page:5308
Funding institution:NSFNational Science Foundation (NSF) [CBET-1639429]; Sofia Kovalevskaya; Prize from the Alexander von Humboldt FoundationAlexander von Humboldt; Foundation; U.S. Department of EnergyUnited States Department of Energy; (DOE) [DE-AC02-05CH11231]
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik und Astronomie
DDC classification:5 Naturwissenschaften und Mathematik / 53 Physik / 530 Physik
Peer review:Referiert
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